

FOLLOWUS
1.State Key Laboratory of Marine Geology, Tongji University, Shanghai 200092, China
2.CNOOC International Ltd., Beijing 100027, China
fu_xiaowei@tongji.edu.cn
收稿:2023-07-25,
网络首发:2023-10-08,
纸质出版:2024-07-01
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Influence of multi-stage volcanic events on the Late Cretaceous-Paleogene reservoirs and its geological significance in the northern Central Myanmar Basin[J]. 海洋湖沼学报(英文), 2024,42(4):1074-1086.
ZHOU Zengyuan,ZHU Weilin,PENG Wenxu,et al.Influence of multi-stage volcanic events on the Late Cretaceous-Paleogene reservoirs and its geological significance in the northern Central Myanmar Basin[J].Journal of Oceanology and Limnology,2024,42(04):1074-1086.
Influence of multi-stage volcanic events on the Late Cretaceous-Paleogene reservoirs and its geological significance in the northern Central Myanmar Basin[J]. 海洋湖沼学报(英文), 2024,42(4):1074-1086. DOI:
ZHOU Zengyuan,ZHU Weilin,PENG Wenxu,et al.Influence of multi-stage volcanic events on the Late Cretaceous-Paleogene reservoirs and its geological significance in the northern Central Myanmar Basin[J].Journal of Oceanology and Limnology,2024,42(04):1074-1086. DOI:
The northward subduction of the Neo-Tethys oceanic crust triggered multiple magmatic activities in the West Myanmar Arc
which in turn influenced the deposition of sedimentary pyroclastic rocks from the Cretaceous to Eocene strata in the Central Myanmar Basin (CMB). The pore structure of these lithologic reservoirs is complex and rich in tuffaceous sandstone
which plays an adverse role in reservoir development in this region. To understand the development characteristics and genetic mechanism of the pyroclastic rocks within three sets of reservoirs in this area
a comprehensive analysis was conducted through borehole core observations
thin section identification
scanning electron microscope analysis
and mercury injection tests. The tuffaceous sandstone from the upper Cretaceous to the Eocene is dominated by intermediate-acid volcanic rock debris. The pyroclastic rocks exhibit evident chloritization and ironization
with residual intergranular pores being the principal type accompanied by a smaller amount of intergranular dissolved pores and intragranular dissolved pores. The highest porosity is observed in the Eocene tuffaceous sandstone
ranging from 8% to 12%. The Late Cretaceous to Paleocene sandstones exhibit lower porosity levels of only 4%–6%. These reservoirs are characterized by their low-porosity and low-permeability. Despite the presence of a good source rock in this area
the volcanic debris particles filling the pores
as well as their subsequent devitrification
chloritization
and limonite mineralization
result in pore throat blockage and narrowing. The reservoirs in this area are small in size
exhibit poor reservoir connectivity and lateral continuity
and fail to meet the necessary conditions for commercial-scale hydrocarbon accumulation and migration.
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